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Electrically tunable plasmomechanical oscillators for localized modulation, transduction, and amplification.


ABSTRACT: Plasmomechanical systems are an emerging class of device that hold great promise for manipulating light-matter interactions with high speed and sub-diffraction spatial resolution. However, realizing their potential requires developing active plasmomechanical systems that can localize their functionality to the level of an individual sub-wavelength plasmonic resonator. Here, we present an active, electrically tunable plasmomechanical system that uses a localized-gap plasmonic resonator to mediate optical, thermal, and mechanical interactions within a subwavelength footprint. Our device enables facile electromechanical modulation of localized plasmons, selective sub-diffraction transduction of nanomechanical motion, and functions as a plasmomechanical oscillator that can be injection locked to and thus amplify weak external stimuli. These functionalities benefit applications in nanomechanical sensing, spatial light modulators, and reconfigurable metasurfaces.

SUBMITTER: Roxworthy BJ 

PROVIDER: S-EPMC11523045 | biostudies-literature | 2018

REPOSITORIES: biostudies-literature

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Electrically tunable plasmomechanical oscillators for localized modulation, transduction, and amplification.

Roxworthy Brian J BJ   Aksyuk Vladimir A VA  

Optica 20180101 1


Plasmomechanical systems are an emerging class of device that hold great promise for manipulating light-matter interactions with high speed and sub-diffraction spatial resolution. However, realizing their potential requires developing active plasmomechanical systems that can localize their functionality to the level of an individual sub-wavelength plasmonic resonator. Here, we present an active, electrically tunable plasmomechanical system that uses a localized-gap plasmonic resonator to mediate  ...[more]

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